非对称多核中动态资源分配和电压频率自适应降低指令能量

A. Annamalai, Rance Rodrigues, I. Koren, S. Kundu
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引用次数: 5

摘要

随着多核处理器的出现,计算的重点正从顺序处理转向并行处理。尽管如此,在当前的多核系统上执行时,需要强大顺序性能的应用程序并没有达到最高的性能/功率。由于不同应用程序的计算需求随着时间的推移而变化很大,因此需要根据需求动态分配适当的计算资源,以适应应用程序的当前需求,从而最大限度地减少能耗。通过动态调整电压和频率以更好地适应工作负载的变化特性,可以进一步降低每条指令的能量(EPI)。当一个核心的活动水平较低时,它不仅可以被强制进入低功耗模式,而且这样做所节省的功率可以被重新分配给其他核心,以提高整个系统的吞吐量。为此,我们提出了一种通过无缝结合异构、动态资源分配(DRA)和动态电压和频率自适应(DVFA)功能来调整核心资源以适应不断变化的应用需求的整体解决方案,以提高能源效率。我们的研究结果表明,与基线异构多核相比,该方案的epi降低了约17.9%,与仅使用DVFA的基线异构多核相比降低了14%,与仅使用DRA的基线异构多核相比降低了约16.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reducing Energy per Instruction via Dynamic Resource Allocation and Voltage and Frequency Adaptation in Asymmetric Multicores
With the advent of multicore processors the emphasis incomputation is moving from sequential to parallel processing. Still, applications that require strong sequential performance do not achieve their highest performance/power when executing on current multicoresystems. As the computational needs vary significantly across different applications and with time, there is a need to dynamically allocate appropriate computational resources on demand to suit the applications' current needs, in order to minimize the energy consumption. The Energy per Instruction (EPI) could be further decreased by dynamically adapting the voltage and frequency to better fit the changing characteristics of the workload. Not only can a core be forced to a low power mode when its activity level is low, but the power saved by doing so could be opportunistically re-budgeted to other cores to boost the overall system throughput. To this end, we propose a holistic solution to energy efficiency improvement by seamlessly combining heterogeneity, Dynamic ResourceAllocation (DRA) and Dynamic Voltage and Frequency Adaptation (DVFA) capabilities to adapt the core resources to the changing demands of applications. Our results show that the proposed scheme provides anEPI reduction of about 17.9% when compared to the baseline heterogeneous multicore, 14% when compared to the baseline heterogeneous multicore with DVFA only and about 16.5% when compared to the baseline heterogeneous multicore with DRA only.
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